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I want to count the sibling by classes,

html,

<div class="item-sibling">1</div>
<div class="item-holder"><div class="item-sibling">2</div></div>
<div class="item-holder"><div class="item-sibling">3</div></div>
<div class="item-holder"><div class="item-sibling">4</div></div>
<div class="item-holder"><div class="item-sibling">5</div></div>​

jquery,

var len = $('.item-sibling').siblings().css({background:'red'}).length;
alert(len);​​​​ // return 4

it does not include <div class="item-sibling">1</div>

how can I include it?

jsfiddle link

and if I change the html to,

<div class="item-sibling">0</div>
<div class="item-sibling">1</div>
<div class="item-holder"><div class="item-sibling">2</div></div>
<div class="item-holder"><div class="item-sibling">3</div></div>
<div class="item-holder"><div class="item-sibling">4</div></div>
<div class="item-holder"><div class="item-sibling">5</div></div>

I will get 6 this time. Strange!

EDIT,

<div class="group-a">
    <div class="item-sibling">1</div>
    <div class="item-holder"><div class="item-sibling">2</div></div>
    <div class="item-holder"><div class="item-sibling">3</div></div>
    <div class="item-holder"><div class="item-sibling">4</div></div>
    <div class="item-holder"><div class="item-sibling">5</div></div>​
</div>


<div class="group-b">
    <div class="item-sibling">1</div>
    <div class="item-holder"><div class="item-sibling">2</div></div>
    <div class="item-holder"><div class="item-sibling">3</div></div>
</div>

There are series of groups with the same class, and I want to count a targeted group's sibling dynamically for instance the first group.

share|improve this question
    
siblings + 1 = answer –  musefan May 11 '12 at 15:06
1  
All .item-sibling elements but the first one have siblings... you have 4 .item-holder elements which are the siblings of the first .item-sibling element. All other .item-sibling elements don't have siblings. I think you didn't get the terminology right... what is your actually issue? What are you trying to achieve with that code? edit: In the other case you get 6 elements because you get the union of siblings of the first two .item-sibling elements. –  Felix Kling May 11 '12 at 15:06
    
what number are you trying to find ? to count the number of elements with the class of item-sibling use $('.item-sibling').lenght –  ManseUK May 11 '12 at 15:13
    
Regarding my previous comment, it's vice versa: None of the .item-sibling elements but the first one have siblings (couldn't edit anymore). –  Felix Kling May 11 '12 at 15:14
    
And with "sibling" you mean .item-sibling elements in that group? –  Felix Kling May 11 '12 at 15:19

5 Answers 5

up vote 4 down vote accepted

You can do

var len = $('.item-sibling').siblings().andSelf().css({background:'red'}).length;

Or...

var len = $('.item-sibling').parent().children().css({background:'red'}).length;

Edit: after reading your updated, I would suggest the following:

1) Add a generic "group" class to each group. E.g.,

<div class="group group-a">
    ...
</div>

2) Then take advantage of that class to find all "siblings":

var len = $('.item-sibling:first').closest('.group')
    .find('.item-sibling').css({background:'red'}).length;
share|improve this answer
    
thanks, jmar. I get 9 as the result though and it should be 5... –  tealou May 11 '12 at 15:11
    
@lauthiamkok: Instead of trying to find a solution to your solution, please explain what your actual problem is. Maybe you don't need/want .siblings() at all! Do you just want to count the .item-sibling elements? –  Felix Kling May 11 '12 at 15:12
    
After reading your updated question, I have to agree with @Felix - what you are describing isn't really siblings. In your problem, what defines a sibling? What you've really described at this point is just all elements with the same class... which would just be $('.item-sibling').length. –  jmar777 May 11 '12 at 15:14
    
@FelixKling please have a look on my edit above. thanks. –  tealou May 11 '12 at 15:17
    
thanks for the edit and suggestion, jmar. –  tealou May 11 '12 at 15:56

It's because siblings are the others. Try jQuery andSelf() which includes the target element to the fetched set.

var len = $('.item-sibling')
    .siblings()
    .andSelf()
    .css({background:'red'})
    .length;

And the second HTML you have, you have 2 .item-sibling which are 0 and 1. jQuery gets 0's siblings (.item-holder, including 1) and 1's siblings (.item-holder, including 0), which makes 6 all in all.

share|improve this answer
1  
andSelf is now deprecated as of JQuery 1.8 and it's replacement is addBack(). –  johntrepreneur Aug 7 '13 at 22:45

According to jquery documentation .

"The original element is not included among the siblings, which is important to remember when we wish to find all elements at a particular level of the DOM tree."

ref : http://api.jquery.com/siblings/

share|improve this answer

Ok, now that we clarified what you want, if you have a reference to the group, you can simply do:

var items = $group.find('.item-sibling').length;

If you have a reference to the an .item-sibling element, do:

var items = $item.closest('.group').find('.item-sibling').length;

This assumes that each group has a common class.

If you want to get a list of number of elements in each group, you have to iterate over each group:

var num_items = $('.group').map(function() {
    return $(this).find('.item-sibling').length;
}).get();
share|improve this answer
    
Thanks Felix, I also have a solution now var len = $('.item-sibling').unwrap().siblings().css({background:'red'}).length; alert(len); maybe not as good as yours but it works. –  tealou May 11 '12 at 15:28
1  
I don't understand why you keep using .siblings(), but if you have fun with it ;) –  Felix Kling May 11 '12 at 15:30
    
my mistake for keeping going on with sibling :-) –  tealou May 11 '12 at 15:58

If you want to count all divs with class="item-sibling", why not just do

$('.item-sibling').length;

This will count all 5 divs?

share|improve this answer
    
sorry, please have a look on my edit above. thanks. –  tealou May 11 '12 at 15:21

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